[0001] The present invention relates to an x-ray imaging apparatus for producing an x-ray
image of an object, comprising:
- a support frame to which an x-ray source and an x-ray detector are connected,
wherein the x-ray source and the x-ray detector define between them an object space
for the object to be examined,
the x-ray source being configured to emit from a focal spot an x-ray beam with a main
direction into the object space,
the x-ray detector comprising an array of pixels sensitive to the x-ray radiation.
[0002] Such x-ray imaging apparatuses are generally known and are used for examining an
object, e.g. a biological object, e.g. a small animal, or a sample, by means of sending
a beam of x-ray radiation through the object, and detecting the radiation after being
attenuated by the object.
[0003] A problem of known x-ray imaging apparatuses is that they do not always provide detected
images with a sufficiently high resolution, especially not if the dimensions of the
objects to be examined varies relatively widely, and more in particular if they become
relatively small with respect to the x-ray source. The latter is, for instance, of
relevance in small animal imaging wherein internal organs or structures within the
animal, e.g. mouse, may be very small. Some x-ray sources are known in which the focal
spot, or area from which the photons are emitted, is itself small, or is switchable
between a large and a small spot. These small focal spot x-ray sources may be impractical
in that they are often rather bulky, e.g. because the 'electron accelerator' or voltage
source then often is positioned directly behind the source's anode, which is undesirable,
and they often have a relatively short useful life, due to much increased wear.
[0004] It is therefore generally an object of the present invention to provide an x-ray
imaging apparatus of the kind mentioned above, that is able to provide high resolution
images even for small objects, e.g. in small animal imaging.
[0005] It is another object of the invention to enable the use of compact and/or long-life
x-ray sources, that still have a high resolution.
[0006] Document
US2010/202591A1 discloses an X-ray imaging apparatus which includes a collimator comprising one or
more collimator bodies defining a plurality of passages defining a common focal point.
[0007] The invention provides for an x-ray imaging apparatus according to claim 1.
[0008] The x-ray imaging apparatus according to the invention may achieve one or more of
the objectives because the collimator may serve as a means to select only a relatively
small part of the x-ray source's focal spot. Ordinarily, such an x-ray source is an
x-ray tube that has an emitting area with certain dimensions, the focal spot, that
are not negligibly small with respect to the structures in the object to be examined,
in particular the desired details thereof, and hence the resolution obtainable is
often insufficient. By using the inventive collimator arrangement in proximity of
the x-ray source, which arrangement has passages whose central directions originate
from a focal point or rather a focal volume as will be explained herein, the apparent
dimension(s) of the x-ray focal spot is (are) further reduced. In fact, the effective
dimensions become close to the dimensions of the focal point or volume of the collimator.
These dimensions, depending on the properties of the collimator, may in embodiments
be limited to a small number of µm's for imaging of small animals, or a fraction of
an mm for a clinical X-ray system or CT scanner.
[0009] The collimator comprises a set of a first collimator body and a second collimator
body arranged in series with the first collimator body, wherein the first collimator
body comprises a first stack of spaced apart first plates with respective first slit
spaces there between, said first slit spaces being directed towards a common first
imaginary line, wherein the second collimator body comprises a second stack of spaced
apart second plates with respective second slit spaces there between, wherein said
second slit spaces are directed towards a common second imaginary line, the first
and second common imaginary lines crossing one another in the common focal point,
so that the first and second slit spaces together form said plurality of passages
of the collimator. This structure resembles somewhat a slit-slat collimator and has
the advantage of being easy to produce. The structure has substantially square or
rectangular passages, which may produce partial images that fit better onto a detector.
For example, each collimator body is made by stacking a plurality, e.g. at least three,
plates of a material that is opaque for x-rays, such as gold or some other metal,
with interposition of plates of an x-ray transparent material, such as many plastics,
e.g. polystyrene. Another option would be to take a block of x-ray transparent material
and create slits in the material, such as by milling or lasering, after which these
slits are filled with an x-ray opaque material. Other production methods are not excluded,
e.g. 3D printing.
[0010] In theory, it is possible to have all central directions of the passages of the collimator
originate exactly from one point, the focal point. However, in practice the x-rays
emerging from a passage will still be distributed over a band of directions around
the central direction of that passage. This means that the apparent origin of the
x-rays emerging from a single passage is also a "smeared out" focal point, i.e. a
focal volume. Yet, because each passage will have a non-negligible length, this distribution,
i.e. the size of the focal volume, may be substantially smaller than the original
focal spot area of the x-ray source.
[0011] According to the invention, the collimator is positioned in proximity of the x-ray
source and in between the x-ray source and the object to be imaged. In practice, the
collimator will be positioned very close to the x-ray source, in particular as close
to the x-ray source as possible. In practical embodiments, the x-ray source is an
x-ray tube that has a housing including an x-ray window from which the x-ray beam
leaves the x-ray source, wherein the collimator is arranged outside of the window,
in proximity to the window, e.g. a beryllium window.
[0012] As preferred, the collimator, and any collimator mover when present, is mounted to
the support frame, e.g. on the x-ray source and/or in vicinity of the x-ray source.
For example, in embodiments wherein the support frame is movable by a support frame
drive to bring the x-ray source in various spatial positions relative to the object
space, the collimator then follows motion of the support frame and remains in proximity
to the x-ray source and in the path of the x-ray beam between the x-ray source and
the object to be examined.
[0013] The distance of the collimator to the x-ray source is, preferably, a fixed distance,
e.g. in view of positioning the focal point of the passage of the collimator in the
actual focal spot of the x-ray source. For example, the collimator is movable by an
associated mover in a direction or plane that extends perpendicular to the x-ray beam,
yet is not movable towards and away from the x-ray source along the direction of the
x-ray beam.
[0014] It is preferred for the common focal point of the plurality of passages of the collimator
to be located on the focal spot of the X-ray source.
[0015] It is preferred for the common focal point of the plurality of passages of the collimator
to have an effective size that is smaller than the focal spot of the X-ray source,
e.g. an effective size with a diameter between 10 µm and 50 µm, e.g. for small animal
imaging.
[0016] In an embodiment, the passages of the collimator each have a diameter or largest
cross-sectional dimension of between 1 µm and 10 µm, e.g. between 1 µm and 5 µm, e.g.
for small animal imaging.
[0017] A collimator in an x-ray imaging apparatus according to the invention comprises a
first and a second collimator body, that in combination define passages or through
going holes for the x-ray. In between the passages is x-ray blocking material of the
collimator, such that there are some directions, corresponding to the blocking material,
in which no radiation is effectively emitted from the x-ray source when the collimator
is in its operative position. To compensate for this effect, and in order to obtain
information from those directions as well, it is highly preferred for the collimator
to be movable by means of an associated collimator mover, that is configured to move
the collimator. For example, the mover is embodied to move the collimator in two directions
perpendicular to the x-ray beam direction. In practical embodiments, the displacement
of the collimator need not be (much) more than the centre-to-centre distance of the
passages and can even be the same or even less than said distance in embodiments,
e.g. half said distance or about said distance.
[0018] Of course, positioning such a collimator in the x-ray beam path reduces the intensity
of the x-rays, and this can be compensated by a prolonged exposure time. It may be
necessary to ensure that the object does not move during the prolonged exposure. But
note that it is often tissue parts of an object that needs to be examined or an anesthetized
object, in which case there is no motion blur during prolonged exposure. This likewise
indicates that the absolute dimensions of the actual object (e.g. an organ or a limb
of an animal) often much smaller than an ordinary object, i.e. the full animal.
[0019] In an embodiment, the x-ray imaging apparatus further comprises a collimator mover
configured to move the collimator with respect to the x-ray source in at least two
directions, e.g. orthogonal directions, in a plane perpendicular to the main direction
of the x-ray beam.
[0020] For example, the collimator mover is configured to provide solely for a planar motion
of the collimator with respect to the x-ray source in at least two directions, e.g.
orthogonal directions, in a plane perpendicular to the main direction of the x-ray
beam. This solution has a low complexity.
[0021] It is envisaged that the collimator mover is configured and operated to move the
collimator during producing of one x-ray image into multiple distinct positions in
the course of acquisition of data related to said one image. For example, the collimator
has in one direction perpendicular to the x-ray beam an array of multiple passages
at a centre-to-centre spacing at the incident side of the collimator, wherein the
collimator mover is configured and operated to move the collimator in said one direction
between two acquisition positions over a distance that is related to said centre-to-centre
distance, e.g. over a distance of between 0.5 and 2 times said centre-to-centre distance,
e.g. 1 times said centre-to-centre distance, e.g. in the course of acquisition of
data related to one image, e.g. from one spatial location of the x-ray source relative
to the object to be examined.
[0022] In an embodiment, the collimator mover is configured to move and is operated to move
the collimator over an area of an imaginary sphere relative to the common focal point.
[0023] In an embodiment, the collimator mover comprises one or more piezo-actuators to provide
for motion of the collimator, e.g. configured and operated to move the collimator
during producing of one x-ray image into multiple distinct positions in the course
of acquisition of data related to said one image.
[0024] In an embodiment, the collimator has in one direction perpendicular to the x-ray
beam an array of multiple passages at a centre-to-centre spacing at the incident side
of the collimator, wherein the collimator mover is configured to move and is operated
to move the collimator in said one direction over a distance related to said centre-to-centre
distance, e.g. over a distance of between 0.5 and 2 times said centre-to-centre distance,
e.g. 1 times said centre-to-centre distance.
[0025] Particular embodiments are described in the dependent claims, as well as in the now
following part of the description.
[0026] In embodiments, the support frame is movable relative to a stationary main frame
by a support frame drive.
[0027] In embodiments, the object carrier is movable relative to a stationary main frame
by an object carrier drive, preferably independently controllable from motion of the
support frame effected by a support frame drive.
[0028] In embodiments, the support frame is rotatable, by an associated drive, about an
axis extending through the object space, e.g. a horizontal axis. This, for example,
may allow for creating 3D imaging capability.
[0029] In embodiments, the x-ray imaging apparatus further comprises a main frame, e.g.
a stationary main frame, to which the support frame is mounted, as well as an object
carrier for carrying the object in the object space. In embodiments, the support frame
and the object carrier are rotatable with respect to each other.
[0030] The object may be positioned on an object carrier such as an, optionally movable,
object table or other carrier, or may be held by one or more wires or the like.
[0031] The object carrier may be part of the x-ray imaging apparatus, or may be a distinct
device that is removable and insertable from and into the object space.
[0032] The support frame may be rotatable with respect to a stationary main frame and/or
the object carrier may be rotatable with respect to the support frame, e.g. in order
to obtain 3D capabilities for the imaging. However, it is also useful to have only
one imaging direction, i.e. 2D imaging only.
[0033] In some embodiments, the collimator is removably positionable in an operative position.
Providing a removable collimator, that is actually removable out of the way of the
x-ray beam all together, makes it possible to use the "normal' x-ray source for relatively
large objects or parts thereof, while - if a higher resolution is needed, such as
in particular for smaller details or objects, - the collimator is put into its operative
position. In the operative position, in embodiments, the collimator mover may be present
to perform collimator motion as described herein for acquisition of data related to
establishing an x-ray image.
[0034] In embodiments, the x-ray imaging apparatus further comprises a collimator remover
device for automated motion of the collimator between an operative position and an
inactive position where the collimator is out of the beam of x-rays. By automatizing
this motion for removal of the collimator, and of course conversely the moving into
operative position, of the collimator, it becomes possible to switch to a different
resolution during examining one and the same object.
[0035] The way in which the collimator moves the collimator or one or more collimator bodies
thereof relative to the x-ray source is not particularly limited. In practice one
would like to provide a motion that ensures that x-ray radiation from a sufficient
amount of angles is imaged through the object.
[0036] Preferably, the collimator mover is arranged to move the collimator during imaging
in two different directions, preferably consecutively, which directions are substantially
perpendicular to the main direction of the x-ray beam, e.g. orthogonal to one another.
Each said motion may be over a distance that relates to a centre-to-centre distance
between two passages that are neighboring in said direction, e.g. half said distance,
or about or exactly said distance, or a few times said distance.
[0037] In practice it is desired to move the collimator such that all of the radiation coming
from the focal point/volume, not from the larger focal spot of the x-ray source, can
pass at least one passage of the collimator.
[0038] It may be possible to use a respective distance that is equal to the centre-to-centre
distance minus the width of the passage, in each case at the side of the x-ray source.
[0039] It is remarked that in a particular embodiment the moving by the collimator mover
of the collimator or each of the collimator bodies is performed over an imaginary
spherical surface that extends around the focal point, so having the focal point as
centre of the radius. This is done, for example, in view of the spherical symmetry
of the x-ray beam. With strictly planar displacements of the collimator, the focal
point would then move across the focal spot of the x-ray source, which may lower the
resolution. The collimator and associated mover are, in embodiments, configured for
performing such a spherical movement (e.g. over a grid of geodesics across the spherical
surface). This may be brought about by means of a mechanical coupling between movements,
which are then effectively in three dimensions, or by means of electronically controlling
separate movements in all directions.
[0040] The movement of the one or more collimator bodies relative to the x-ray source may
be performed in steps, such as in a 'grid', in which firstly a number of images are
taken at a starting position in the first direction, and with a step of displacing
the collimator over a part of the desired total displacement in the second direction.
Thereafter, a step is taken in the first direction, and again a number of images are
taken by stepwise displacement in the second direction, and so on until also all desired
steps in the first direction have been covered. For example, a grid of 4 x 4 steps
will provide good results efficiently, although any other plurality of steps may also
perform satisfactorily. It is also possible to perform a sweep in the second direction,
i.e. imaging continuously while moving the collimator in the second direction, and
after finishing the sweep to take a step in the firs direction, repeating the sweep,
and so on.
[0041] In an embodiment, the first collimator body and a second collimator body of the collimator
are mobile relative to one another and/or relative to the x-ray source, e.g. in multiple
positions relative to the x-ray beam in the course of acquisition of imaging data
used to establish a single x-ray image.
[0042] In an embodiment, the first collimator body and a second collimator body are mounted
to one another as an integrated collimator body, wherein said integrated collimator
body is mobile relative to the x-ray source as described herein by a collimator mover.
[0043] In an embodiment, the first collimator body and a second collimator body are mobile
relative to one another and relative to the x-ray source, wherein a first collimator
body mover is connected to the first collimator body, and wherein a second collimator
body mover is connected to the second collimator body, the first and second collimator
body movers each being configured to move the respective collimator body. For example,
one or both of the first and second collimator body movers are embodied as described
herein.
[0044] In an embodiment, the first collimator body and a second collimator body are mobile
relative to one another and relative to the x-ray source, wherein a first collimator
body mover is connected to the first collimator body and wherein a second collimator
body mover is connected to the second collimator body, the first and second collimator
body movers being configured to move the respective collimator body in a direction
substantially perpendicular to the slits thereof. For example, one or both of the
first and second collimator body movers are embodied as described herein.
[0045] It is possible, in embodiments, for the collimator movers to move one of the first
or second body one step at a time, in a corresponding direction, and then between
two subsequent steps move the other collimator body in another, e.g. perpendicular
direction, by means of the other mover, all the while an x-ray image is being made.
[0046] The present invention also relates to a method for imaging an object by means of
an x-ray imaging apparatus as described herein.
[0047] The invention will now be explained with reference to a number of non-limiting, exemplary
embodiments, and to the drawings, in which:
- Fig. 1 shows very diagrammatically an x-ray imaging apparatus, in a side elevational
view;
- Fig. 2 shows a very diagrammatical detail of an embodiment of the x-ray imaging apparatus
according to the invention; and
- Fig. 3 shows the collimator of Figure 2 in some more detail, in a diagrammatic perspective
view.
[0048] Figure 1 shows very diagrammatically an x-ray imaging apparatus 1, in a side elevational
view.
[0049] The x-ray imaging apparatus 1 comprises a stationary main frame 2, to which is mounted
a mobile, preferably rotatable support frame 3, e.g. embodied as a C-arm as shown
here schematically, or embodied as a rotating gantry.
[0050] The support frame 3 is rotatable, preferably at least in a stepwise mode, by means
of support frame rotator 4 around an axis 5, e.g. about a single axis, e.g. as in
a gantry imaging system. In practical embodiments, the axis 5 is a horizontal axis.
[0051] An x-ray tube is indicated by reference numeral 6. Generally the x-ray tube 6 comprises
an anode, an emitter arrangement comprising a cathode for emitting an electron beam
towards the anode onto a focal spot on the anode, e.g. including electron optics for
focusing the electron beam at the focal spot on the anode.
[0052] The x-ray tube 6 is provided with an X-ray window, e.g. a beryllium window 7.
[0053] An object carrier 10 is configured to carry an object 11 to be examined, e.g. a small
animal, here a mouse.
[0054] An x-ray detector 8 is arranged for detecting at least part of the X-ray beam that
has passed through the object 11.
[0055] Reference A indicates the object space between the x-ray tube 6 and the x-ray detector
8, wherein generally the object 11 to be examined is placed.
[0056] The x-ray detector 8 comprises an array, e.g. a 2D array, of pixels 9 sensitive to
the x-ray radiation.
[0057] For example, the object carrier 10 comprises a horizontal table on which an object
11 to be examined is placed.
[0058] Preferably, the object carrier 10 is movable by means of an associated object carrier
mover 12, here a table mover 12, between a retracted position outside the object space
A and an imaging position within the object space A.
[0059] Preferably, the object carrier 10 is movable by means of an associated object carrier
mover 12, here a table mover 12, in one or more directions whilst the carrier 10 supports
the object in the object space, e.g. in multiple orthogonal directions, e.g. in x,
y, z directions, e.g. as indicated by arrows D. These one or more direction motions
can be performed before, during and/or after scanning the object with the apparatus.
[0060] A computerized reconstructor reconstructs the imaging data and may, in embodiments,
be configured to generate three dimensional (3D) volumetric image data indicative
of an examination region and an object therein. The resulting volumetric image data
can be processed by an image processor or the like to generate one or more images.
[0061] A general purpose computing system may be provided to serve as an operator console,
and includes an output device such as a display and an input device such as a keyboard,
mouse, and/or the like. Software resident on the console may allow the operator to
control the operation of the imaging device, for example, allowing the operator to
initiate scanning, etc.
[0062] In front of the window 7 there is provided a collimator 13, that has a collimator
body 14 with through going passages 15, and which is movable in the direction of arrows
B by collimator mover 16.
[0063] A collimator remover 17 may remove the collimator 13 from the emitted x-rays 18 in
the direction of arrows C.
[0064] A beam shaping and blocking device is designated '19'.
[0065] A narrowed and more focused beam is indicated 18', while a focal point of the beam
18' is designated '20'.
[0066] In use, an object 11, such as a mouse or the like, is provided on the object carrier
or table 10, and moved into the object space "A" by means of the table mover 12. By
moving the table 10 in any one or more of the directions indicated by the arrows D,
the object 11 may be positioned as desired with respect to the x-ray source 6 and
the detector 8, i.e. with respect to the beam 18.
[0067] The x-rays 18 are generated by an x-ray source 6, in this case e.g. an x-ray tube,
and emitted in a relatively coarse beam 18, for example with a size of its focal spot
between about 0.1 and 1.2 mm diameter, depending on the properties of the source 6.
[0068] The coarse x-ray beam 18 emitted by the source 6 is trimmed down and shaped to a
beam 18' that seems to originate from a much smaller effective focal spot defined
by focal point or focal volume 20. This effective focal spot or volume could, for
example, have a size of 20 - 25 µm diameter. Thereto, the coarse radiation 18 is sent
through the collimator 13, with the collimator body 14 that has through going holes
or passages 15.
[0069] In the example shown, the collimator is a cone beam collimator, in which there is
one collimator body 14, and all holes or passages point to the same focal point on
the focal spot 20.
[0070] Optionally, there is provided an additional beam shaping and blocking device 19,
which is in principle not much more than a rim around the collimator body 14, that
blocks any superficial radiation. The presence of such a simple rim, which may be
as thick as the rest of the collimator body 14, ensures that there will be no x-rays
apart from the ones in the beam 18', without having to provide too many holes 15 in
the rim of the collimator body 14.
[0071] In use of the x-ray imaging apparatus 1, the collimator 13 may be moved with respect
to the source 6 by means of the collimator mover 16, e.g. in the direction of the
arrows B. Note that the collimator 13 need not be moved more than the centre-to-centre
distance between the passages 15 in order to provide a full image.
[0072] To increase precision, it is preferred for the collimator 13 to be moved on an imaginary
sphere around the focal point 20, such that the effective position of that focal point
20 remains the same during imaging. The collimator mover and control thereof should
then of course be laid out correspondingly. This may be achieved by mechanical means
or by adding movability in the third dimension and having the collimator mover 16
perform the desired combined spherical movement of the collimator 13,
in casu of the collimator body 14.
[0073] The collimator mover 16 may comprise one or more piezo-actuators to provide for the
movability. Such actuators can provide small required displacements with high precision,
reliability and repetition frequency. Yet, other actuators are not excluded, such
as stepper motors.
[0074] The collimator remover 17 is shown as being provided to remove the collimator 13
from the x-ray beam 18/18'. In that case, the shaped beam 18' is then replaced again
by the "coarse" x-rays 18, for example to image and examine much bigger objects 11,
or with much higher intensity and correspondingly shorter exposure times. The collimator
remover may comprise a coarser actuator than for the collimator mover 16, but it is
also possible to combine the collimator mover and the collimator remover into one,
such as with a device combining a piezo-actuator and a hinge or a linear actuator
with a much larger stroke.
[0075] It is important to note that the drawing is not to scale. In particular, the dimensions
of the object space A, that is, the distance between the x-ray tube 6 and the detector
8 are often between about 200 and 600 mm. Contrarily, the thickness of the collimator
body 14 may in practice be about 1 - 2 mm. A larger thickness might not improve the
qualities any further, but would make it more difficult to make the holes or passages
15.
[0076] Also the number of passages 15 in the collimator body 14 will be (much) higher than
the five shown here. The diameter of each of the passages 15 in reality will be a
few µm, such as between 1 and 10 µm. Together, they ensure that the focal spot 20
of the x-ray tube 6 will effectively be reduced to a focal volume pf a few dozen µm,
such as e.g. 25 µm across. Similarly, the pixels 9 of the x-ray detector 8 are often
somewhat less than 0.1 × 0.1 mm, such as 75 µm × 75 µm, their number correspondingly
higher than shown in the drawing. In all cases, the numbers are exemplary, only giving
an impression of realistic values.
[0077] Furthermore, while a whole mouse 11, or at least a large part of it, may be examined
in the present situation, it is possible to bring the object 11 much closer to the
x-ray source 6, the collimator 13 still being between the source 6 and the object
11. It will be so that often a correspondingly smaller object or part thereof may
be examined. Because of the much larger magnification (ratio between "distance from
source 6 to object 11" to "distance from source 6 to detector 8"), it becomes more
important to have a high resolution in the image. This is possible with the present
invention due to the provision of the collimator 13 between the source 6 and the object
11, which reduces the effective size (focal spot) of the x-ray source from, say, 0.1
to 2 mm to, say, 25 µm. Note that, when bringing the object 11 closer to the source
6, it may be necessary to adapt the way in which the frame 3 with source 6 and detector
8 is rotated around an axis through the object 11, in order to obtain sufficient angular
information. This adaptation may comprise sliding the support frame 3 in a direction
perpendicular to the direction of the axis 5, such that the x-ray source 6 comes much
closer to the axis 5 than the detector 8. Any other measure that achieves the same
effect is also possible here.
[0078] The support frame 3 is here shown to be rotatable with respect to the main frame
2, e.g. about a horizontal rotation axis. However, it is also possible to have a fixed
frame 3 without the rotatability, and have the object carrier 10 rotate with respect
to the frame 3, or even have no rotation at all and have only 2D imaging properties.
[0079] Figure 2 shows a very diagrammatical detail of an embodiment of the x-ray imaging
apparatus according to the invention, in particular the part with the x-ray source
and the collimator. Herein, as in all of the drawing, similar parts are denoted by
the same reference numerals.
[0080] The detail shows a small part of the frame 3 with an x-ray source 6, a protective
but x-ray transparent window 7, and a different collimator 13' having focal point
20 on the focal spot of the x-ray source 6.
[0081] The collimator 13' comprises a set of a first collimator body 21 and a second collimator
body 22 that is arranged in series with the first collimator body 21. The first collimator
body 21 comprises a first stack of spaced apart first plates 26 with respective first
slit spaces 28 between adjacent plates. These first slit spaces 28 are all directed
towards a common first imaginary line F1. The second collimator body 22 comprises
a second stack of spaced apart second plates 23 with respective second slit spaces
24 there between. These second slit spaces 24 are all directed towards a common second
imaginary line F2. The plates of the bodies are non-parallel from the one body to
the other body, so that the first and second common imaginary lines cross one another
in the common focal point 20. As a result the first and second slit spaces 28, 24
together form the plurality of passages of the collimator 13' focused on the common
focal point 20, e.g. of very small size, e.g. much smaller than the focal spot of
the x-ray source in absence of the collimator 13'.
[0082] The bodies 21, 22 may be moved by a corresponding mover 25, 26 about the respective
focal line.
[0083] The bodies 21, 22 may interface with curved or even spherical adjoining sides as
schematically illustrated, e.g. allowing for motion of each body about the respective
focal line, e.g. by a corresponding mover 25, 26.
[0084] Figure 3 shows the collimator 13' in some more detail, in a diagrammatic perspective
view.
[0085] When the beam of x-rays from the x-ray source 6 of Figure 2 shines through this collimator
13', the resulting source as "seen" by an object is again an apparent focal spot 20,
where the focal lines F1 and F2 cross.
[0086] The numbers of plates shown here by way of example is arbitrary, and these numbers,
as well as the thickness of the plates 27, 23 and the width of the slits 28, 24 may
be selected as desired.
[0087] The first collimator body mover 25 is arranged to move the first body 21, e.g. in
a direction substantially perpendicular to the main direction of the corresponding
slits 28, albeit in particular as preferred on a sphere around the focal point 20
or about line F1, i.e. the direction indicated by "A" in Figure 2, which is into/out
of the paper. Similarly, the second collimator body mover 26 may be arranged to move
the second body 22 in the perpendicular direction of arrow B.
[0088] The movements of the two bodies 21, 22 may be coordinated, such as moving the first
body 21 over a first step, and then performing a sweeping or further step like motion
for the second body 22, or
vice versa. Faster vibrating movements of both bodies 21, 22 during imaging are also possible,
as long as all desired or possible beam directions originating from the focal point
are imaged sufficiently. Note that the first and second collimator body movers may
again comprise a piezo-actuator or the like, and may together be complemented by a
collimator remover (not shown) for removing the collimator 13', likewise as for the
collimator remover 17 as per Figure 1.
[0089] The embodiments and figures are only given as an exemplifying explanation of the
invention, without limiting the scope of the appended claims.
1. An x-ray imaging apparatus for producing an x-ray image of an object, comprising:
- a support frame to which an x-ray source and an x-ray detector are connected,
wherein the x-ray source and the x-ray detector define between them an object space
for the object to be examined,
the x-ray source being configured to emit from a focal spot an x-ray beam with a main
direction into the object space,
the x-ray detector comprising an array of pixels sensitive to the x-ray radiation,
the x-ray imaging apparatus further comprising a collimator arranged in proximity
to the x-ray source and in the path of the x-ray beam between the x-ray source and
the object to be examined, the collimator comprising one or more collimator bodies
defining a plurality of passages of the collimator, the passages having respective
central directions defining a common focal point of the collimator on the side of
the x-ray source,
characterised in that,
the plurality of passages is a 2D array of passages seen in a plane perpendicular
to the main direction of the x-ray beam, wherein the collimator comprises a set of
a first collimator body and a second collimator body arranged in series with the first
collimator body, wherein the first collimator body comprises a first stack of spaced
apart first plates with respective first slit spaces there between, said first slit
spaces being directed towards a common first imaginary line, and wherein the second
collimator body comprises a second stack of spaced apart second plates with respective
second slit spaces there between, wherein said second slit spaces are directed towards
a common second imaginary line, the first and second common imaginary lines crossing
one another in the common focal point, so that the first and second slit spaces together
form said plurality of passages of the collimator.
2. An x-ray imaging apparatus according to claim 1, wherein the common focal point of
the plurality of passages of the collimator is on the focal spot of the X-ray source.
3. An x-ray imaging apparatus according to claim 1 or 2, wherein the common focal point
of the plurality of passages of the collimator has an effective size that is smaller
than the focal spot of the X-ray source.
4. An x-ray imaging apparatus according to any one or more of claims 1 - 3, wherein the
common focal point of the plurality of passages of the collimator has an effective
size with a diameter between 10 µm and 50 µm.
5. An x-ray imaging apparatus according to any one or more of claims 1 - 4, wherein the
x-ray source has a housing including an x-ray window from which the x-ray beam leaves
the x-ray source, wherein the collimator is arranged outside of the window, in proximity
to the window, e.g. a beryllium window.
6. An x-ray imaging apparatus according to any one or more of claims 1 - 5, wherein the
x-ray imaging apparatus further comprises a collimator mover configured to move the
collimator with respect to the x-ray source in at least two directions in a plane
perpendicular to the main direction of the x-ray beam, e.g. the collimator mover being
configured to provide solely a planar motion of the collimator with respect to the
x-ray source in at least two directions in a plane perpendicular to the main direction
of the x-ray beam, for example wherein the collimator mover is configured to move
the collimator during producing of an x-ray image.
7. The x-ray imaging apparatus according to any one or more of claims 1 - 6, wherein
the collimator is removably positionable in said position in proximity of the x-ray
source, for example, wherein the imaging apparatus comprises a collimator remover
device configured for automated removing the collimator from said position to an inoperative
position out of the x-ray beam.
8. The x-ray imaging apparatus according to any or more of claims 1 - 7, wherein the
first collimator body and a second collimator body are mobile relative to one another
and/or relative to the x-ray source.
9. The x-ray imaging apparatus according to any or more of claims 1 - 8, wherein the
first collimator body and a second collimator body are mounted to one another as an
integrated collimator body, and wherein said integrated collimator body is mobile
relative to the x-ray source according to claim 6.
10. The x-ray imaging apparatus according to any or more of claims 1 - 7, wherein the
first collimator body and a second collimator body are mobile relative to one another
and relative to the x-ray source, wherein a first collimator body mover is connected
to the first collimator body and wherein a second collimator body mover is connected
to the second collimator body, the first and second collimator body movers being configured
to move the respective collimator body in a direction substantially perpendicular
to the slits thereof.
11. A method for imaging an object by means of an x-ray imaging apparatus according to
any one of claims 1 - 10.
12. Method according to claim 11, wherein the collimator creates an effective focal spot
that is smaller than the focal spot of the x-ray source, e.g. the effective focal
spot having an effective size with a diameter between 10 µm and 50 µm, e.g. for small
animal imaging, for example wherein the passages of the collimator each have a diameter
or largest cross-sectional dimension of between 1 µm and 10 µm, e.g. between 1 µm
and 5 µm, e.g. for small animal imaging.
1. Röntgenbildgebungsvorrichtung zum Erzeugen eines Röntgenbilds eines Objekts, Folgendes
umfassend:
- einen Tragrahmen, mit dem eine Röntgenquelle und ein Röntgendetektor verbunden sind,
wobei die Röntgenquelle und der Röntgendetektor zwischen ihnen einen Objektraum für
das Objekt definieren, das untersucht werden soll,
wobei die Röntgenquelle eingerichtet ist um aus einem Brennpunkt einen Röntgenstrahl
mit einer Hauptrichtung in den Objektraum zu emittieren,
wobei der Röntgendetektor eine Matrix von Pixeln umfasst, die für die Röntgenstrahlung
empfindlich sind, wobei die Röntgenbildgebungsvorrichtung weiterhin einen Kollimator
umfasst, der nahe der Röntgenquelle und im Pfad des Röntgenstrahls zwischen der Röntgenquelle
und dem Objekt angeordnet ist, das untersucht werden soll, wobei der Kollimator mindestens
einen Kollimatorkörper umfasst, der eine Vielzahl von Durchgängen des Kollimators
definiert, wobei die Durchgänge jeweilige zentrale Richtungen aufweisen, die einen
gemeinsamen Brennpunkt des Kollimators auf der Seite der Röntgenquelle definieren,
dadurch gekennzeichnet, dass
die Vielzahl von Durchgängen, in einer Ebene senkrecht zur Hauptrichtung des Röntgenstrahls
gesehen, eine 2D-Matrix von Durchgängen ist, wobei der Kollimator einen Satz eines
ersten Kollimatorkörpers und eines zweiten Kollimatorkörpers, der in Reihe mit dem
ersten Kollimatorkörper angeordnet ist, umfasst, wobei der erste Kollimatorkörper
einen ersten Stapel beabstandeter erster Platten mit jeweiligen ersten Schlitzräumen
dazwischen umfasst, wobei die ersten Schlitzräume auf eine gemeinsame erste imaginäre
Linie gerichtet sind, und wobei der zweite Kollimatorkörper einen zweiten Stapel beabstandeter
zweiter Platten mit jeweiligen zweiten Schlitzräumen dazwischen umfasst, wobei die
zweiten Schlitzräume auf eine gemeinsame zweite imaginäre Linie gerichtet sind, wobei
sich die erste und die zweite gemeinsame imaginäre Linie in dem gemeinsamen Brennpunkt
kreuzen, so dass die ersten und die zweiten Schlitzräume zusammen die Vielzahl von
Durchgängen des Kollimators ausbilden.
2. Röntgenbildgebungsvorrichtung nach Anspruch 1, wobei der gemeinsame Brennpunkt der
Vielzahl von Durchgängen des Kollimators auf dem Brennpunkt der Röntgenquelle ist.
3. Röntgenbildgebungsvorrichtung nach Anspruch 1 oder 2, wobei der gemeinsame Brennpunkt
der Vielzahl von Durchgängen des Kollimators eine effektive Größe aufweist, die kleiner
ist als der Brennpunkt der Röntgenquelle.
4. Röntgenbildgebungsvorrichtung nach mindestens einem der Ansprüche 1 bis 3, wobei der
gemeinsame Brennpunkt der Vielzahl von Durchgängen des Kollimators eine effektive
Größe mit einem Durchmesser zwischen 10 µm und 50 µm aufweist.
5. Röntgenbildgebungsvorrichtung nach mindestens einem der Ansprüche 1 bis 4, wobei die
Röntgenquelle ein Gehäuse aufweist, das ein Röntgenfenster umfasst, aus dem der Röntgenstrahl
die Röntgenquelle verlässt, wobei der Kollimator nahe dem Fenster außerhalb des Fensters,
z. B. eines Beryllium-Fensters, angeordnet ist.
6. Röntgenbildgebungsvorrichtung nach mindestens einem der Ansprüche 1 bis 5, wobei die
Röntgenbildgebungsvorrichtung weiterhin eine Kollimatorbewegungsvorrichtung umfasst,
die eingerichtet ist um den Kollimator hinsichtlich der Röntgenquelle in mindestens
zwei Richtungen in einer Ebene senkrecht zur Hauptrichtung des Röntgenstrahls zu bewegen,
wobei die Kollimatorbewegungsvorrichtung z. B. eingerichtet ist um ausschließlich
eine planare Bewegung des Kollimators hinsichtlich der Röntgenquelle in mindestens
zwei Richtungen in einer Ebene senkrecht zur Hauptrichtung des Röntgenstrahls bereitzustellen,
wobei die Kollimatorbewegungsvorrichtung beispielsweise eingerichtet ist um den Kollimator
beim Erzeugen eines Röntgenbilds zu bewegen.
7. Röntgenbildgebungsvorrichtung nach mindestens einem der Ansprüche 1 bis 6, wobei der
Kollimator beispielsweise in der Position nahe der Röntgenquelle entnehmbar angeordnet
werden kann, wobei die Bildgebungsvorrichtung eine Kollimatorentnahmevorrichtung umfasst,
die zum automatisierten Entnehmen des Kollimators aus der Position in eine Ruheposition
außerhalb des Röntgenstrahls eingerichtet ist.
8. Röntgenbildgebungsvorrichtung nach mindestens einem der Ansprüche 1 bis 7, wobei der
erste Kollimatorkörper und ein zweiter Kollimatorkörper relativ zueinander und/oder
relativ zu der Röntgenquelle beweglich sind.
9. Röntgenbildgebungsvorrichtung nach mindestens einem der Ansprüche 1 bis 8, wobei der
erste Kollimatorkörper und ein zweiter Kollimatorkörper als ein integrierter Kollimatorkörper
aneinander befestigt sind und wobei der integrierte Kollimatorkörper relativ zu der
Röntgenquelle nach Anspruch 6 beweglich ist.
10. Röntgenbildgebungsvorrichtung nach mindestens einem der Ansprüche 1 bis 7, wobei der
erste Kollimatorkörper und ein zweiter Kollimatorkörper relativ zueinander und relativ
zu der Röntgenquelle beweglich sind, wobei eine erste Kollimatorkörperbewegungsvorrichtung
mit dem ersten Kollimatorkörper verbunden ist und wobei eine zweite Kollimatorkörperbewegungsvorrichtung
mit dem zweiten Kollimatorkörper verbunden ist, wobei die erste und die zweite Kollimatorkörperbewegungsvorrichtung
eingerichtet sind, um den jeweiligen Kollimatorkörper in eine Richtung im Wesentlichen
senkrecht zu ihren Schlitzen zu bewegen.
11. Verfahren zum Abbilden eines Objekts mittels einer Röntgenbildgebungsvorrichtung nach
einem der Ansprüche 1 bis 10.
12. Verfahren nach Anspruch 11, wobei der Kollimator einen effektiven Brennpunkt erzeugt,
der kleiner ist als der Brennpunkt der Röntgenquelle, wobei der effektive Brennpunkt
z. B. eine effektive Größe mit einem Durchmesser zwischen 10 µm und 50 µm aufweist,
z. B. zur Bildgebung eines Kleintiers, wobei beispielsweise die Durchgänge des Kollimators
jeweils einen Durchmesser oder eine größte Querschnittsabmessung zwischen 1 µm und
10 µm aufweisen, z. B. zwischen 1 µm und 5 µm, z. B. zur Bildgebung eines Kleintiers.
1. Appareil d'imagerie par rayons X pour produire une image à rayons X d'un objet, comprenant
:
- un cadre de soutien auquel sont connectés une source de rayons X et un détecteur
de rayons X,
la source de rayons X et le détecteur de rayons X définissant entre eux un espace
objet destiné à l'objet à examiner,
la source de rayons X étant configurée pour émettre, depuis un point focal, un faisceau
de rayons X ayant une direction principale vers l'espace objet,
le détecteur de rayons X comprenant une matrice de pixels sensibles au rayonnement
X,
l'appareil d'imagerie par rayons X comprenant en outre un collimateur disposé à proximité
de la source de rayons X et sur le trajet du faisceau de rayons X entre la source
de rayons X et l'objet à examiner, le collimateur comprenant un ou plusieurs corps
de collimateur définissant une pluralité de passages du collimateur, les passages
ayant des directions centrales respectives définissant un point focal commun du collimateur
du côté de la source de rayons X,
caractérisé en ce que
la pluralité de passages est une matrice 2D de passages vue dans un plan perpendiculaire
à la direction principale du faisceau de rayons X, le collimateur comprenant un ensemble
constitué d'un premier corps de collimateur et d'un second corps de collimateur agencé
en série avec le premier corps de collimateur, le premier corps de collimateur comprenant
un premier empilement de premières plaques espacées avec des premiers espaces de fente
respectifs entre elles, lesdits premiers espaces de fente étant dirigés vers une première
ligne imaginaire commune, et
le second corps de collimateur comprenant un second empilement de secondes plaques
espacées avec des seconds espaces de fente respectifs entre elles, lesdits seconds
espaces de fente étant dirigés vers une seconde ligne imaginaire commune, les première
et seconde lignes imaginaires communes se croisant au point focal commun, de sorte
que les premiers et seconds espaces de fente forment ensemble ladite pluralité de
passages du collimateur.
2. Appareil d'imagerie par rayons X selon la revendication 1, le point focal commun de
la pluralité de passages du collimateur étant situé sur le point focal de la source
de rayons X.
3. Appareil d'imagerie par rayons X selon la revendication 1 ou 2, le point focal commun
de la pluralité de passages du collimateur ayant une taille effective inférieure à
celle du point focal de la source de rayons X.
4. Appareil d'imagerie par rayons X selon l'une quelconque des revendications 1 à 3,
le point focal commun de la pluralité de passages du collimateur ayant une taille
effective avec un diamètre compris entre 10 µm et 50 µm.
5. Appareil d'imagerie par rayons X selon l'une quelconque des revendications 1 à 4,
la source de rayons X comportant un boîtier comprenant une fenêtre à rayons X par
laquelle le faisceau de rayons X sort de la source de rayons X, le collimateur étant
agencé à l'extérieur de la fenêtre, à proximité de la fenêtre, par exemple une fenêtre
en béryllium.
6. Appareil d'imagerie par rayons X selon l'une quelconque des revendications 1 à 5,
l'appareil d'imagerie par rayons X comprenant en outre un dispositif de déplacement
du collimateur configuré pour déplacer le collimateur par rapport à la source de rayons
X dans au moins deux directions dans un plan perpendiculaire à la direction principale
du faisceau de rayons X, le dispositif de déplacement du collimateur étant configuré,
par exemple, pour fournir uniquement un mouvement planaire du collimateur par rapport
à la source de rayons X dans au moins deux directions dans un plan perpendiculaire
à la direction principale du faisceau de rayons X, le dispositif de déplacement du
collimateur étant configuré, par exemple, pour déplacer le collimateur pendant la
production d'une image à rayons X.
7. Appareil d'imagerie par rayons X selon l'une quelconque des revendications 1 à 6,
le collimateur étant positionnable de manière amovible dans ladite position à proximité
de la source de rayons X, l'appareil d'imagerie comprenant, par exemple, un dispositif
de retrait du collimateur configuré pour le retrait automatisé du collimateur de ladite
position vers une position inactive hors du faisceau de rayons X.
8. Appareil d'imagerie par rayons X selon l'une quelconque des revendications 1 à 7,
le premier corps de collimateur et un second corps de collimateur étant mobiles l'un
par rapport à l'autre et/ou par rapport à la source de rayons X.
9. Appareil d'imagerie par rayons X selon l'une quelconque des revendications 1 à 8,
le premier corps de collimateur et un second corps de collimateur étant montés l'un
à l'autre comme un corps de collimateur intégré, ledit corps de collimateur intégré
étant mobile par rapport à la source de rayons X selon la revendication 6.
10. Appareil d'imagerie par rayons X selon l'une quelconque des revendications 1 à 7,
le premier corps de collimateur et un second corps de collimateur étant mobiles l'un
par rapport à l'autre et par rapport à la source de rayons X, un premier dispositif
de déplacement du corps de collimateur étant connecté au premier corps de collimateur
et un second dispositif de déplacement du corps de collimateur étant connecté au second
corps de collimateur, les premier et second dispositifs de déplacement du corps de
collimateur étant configurés pour déplacer le corps de collimateur respectif dans
une direction sensiblement perpendiculaire à ses fentes.
11. Procédé d'imagerie d'un objet au moyen d'un appareil d'imagerie par rayons X selon
l'une quelconque des revendications 1 à 10.
12. Procédé selon la revendication 11, le collimateur créant un point focal effectif qui
est plus petit que le point focal de la source de rayons X, par exemple le point focal
effectif ayant une taille effective avec un diamètre compris entre 10 µm et 50 µm,
par exemple pour l'imagerie de petits animaux, par exemple les passages du collimateur
ayant chacun un diamètre ou une dimension transversale maximale comprise entre 1 µm
et 10 µm, par exemple entre 1 µm et 5 µm, par exemple pour l'imagerie de petits animaux.